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Whistler anisotropy instability with a cold electron component: Linear theory

机译:惠斯勒各向异性不稳定与感冒电子元件:线性理论

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The whistler anisotropy instability is driven by an electron temperature anisotropy T/Tk > 1 where and k denote directions perpendicular and parallel, respectively, to the background magnetic field Bo. Here kinetic linear theory in a magnetized, homogeneous, collisionless plasma model is used to study this instability when the electron velocity distribution may be represented as the sum of a hot, anisotropic bi-Maxwellian and a cold, isotropic component. The critical bke, the value at which the maximum growth rate of the instability changes from propagation parallel to Bo to oblique propagation, decreases with increasing nc/ne, where nc is the cold electron density and ne is the total electron density. At parallel propagation the maximum growth rate increases with nc/ne up to nc/ne 0.8, but then diminishes with further increases of the relative cold electron density. Introduction of a cold electron component can reduce the hot electron anisotropy necessary to excite this instability by up to a factor of 2.
机译:惠斯勒的各向异性是由不稳定电子温度各向异性T / Tk > 1和k表示方向垂直的和分别平行的背景磁场波。一个磁化,均匀,无碰撞的等离子体模型用于研究这个不稳定的时候电子速度分布可能代表各向异性bi-Maxwellian热的总和和寒冷的,各向同性的组件。bke,价值最高的增长率不稳定变化的传播平行波斜传播,减少随着数控/不,其中数控是冷电子密度和ne总电子密度。增长率随数控nc /东北0.8 /不,然后减少的进一步增加相对寒冷的电子密度。冷电子元件可以减少热电子各向异性必要的激励不稳定的2倍。

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